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Facial Expression Recognition under Partial Occlusion Based on Fusion of Global and Local Features

机译:基于全球和局部特征的融合的部分闭塞下的面部表情识别

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Facial expression recognition under partial occlusion is a challenging research. This paper proposes a novel framework for facial expression recognition under occlusion by fusing the global and local features. In global aspect, first, information entropy are employed to locate the occluded region. Second, principal Component Analysis (PCA) method is adopted to reconstruct the occlusion region of image. After that, a replace strategy is applied to reconstruct image by replacing the occluded region with the corresponding region of the best matched image in training set, Pyramid Weber Local Descriptor (PWLD) feature is then extracted. At last, the outputs of SVM are fitted to the probabilities of the target class by using sigmoid function. For the local aspect, an overlapping block-based method is adopted to extract WLD features, and each block is weighted adaptively by information entropy, Chi-square distance and similar block summation methods are then applied to obtain the probabilities which emotion belongs to. Finally, fusion at the decision level is employed for the data fusion of the global and local features based on Dempster-Shafer theory of evidence. Experimental results on the Cohn-Kanade and JAFFE databases demonstrate the effectiveness and fault tolerance of this method.
机译:部分闭塞下的面部表情识别是一个具有挑战性的研究。本文提出了一种通过融合全球和局部特征的遮挡下的面部表情识别框架。在全局方面,首先,采用信息熵来定位遮挡区域。其次,采用主成分分析(PCA)方法来重建图像的闭塞区域。之后,通过在训练集中的最佳匹配图像的相应区域替换封闭区域来应用替换策略来重建图像,然后提取金字塔韦伯本地描述符(PWLD)特征。最后,SVM的输出通过使用SIGMOID函数安装到目标类的概率。对于本地方面,采用基于重叠的基于块的方法来提取WLD特征,并且每个块通过信息熵自适应地加权,然后应用Chi-Square距离和类似的块求和方法来获得情绪所属的概率。最后,在决策级别的融合用于基于Dempster-Shafer证据理论的全局和局部特征的数据融合。 Cohn-Kanade和Jaffe数据库上的实验结果证明了这种方法的有效性和容错能力。

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